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Greenway, A.

Publications and source records attributed to Greenway, A..

2 recordsLinked to original sources

Dithering suppresses half-harmonic neural synchronisation to photic stimulation in humans

While entraining neural rhythms using brain stimulation has been suggested as a therapeutic mechanism to normalise brain activity in conditions such as depression, chronic pain, or Alzheimers disease, periodic stimulation can also inadvertently entrain brain rhythms at sub- and superharmonics of the stimulation frequency, which could lead to deleterious effects. Slightly jittering stimulation pulses (called "dithering") was previously proposed on the basis of mathematical modelling to selectively entrain a target neural rhythm while avoiding harmonic entrainment. In this study, we investigated the potential of dithering in humans. Using photic stimulation (light flicker) and EEG recordings in healthy participants, we showed that dithering suppresses half-harmonic synchronisation relative to perfectly periodic flicker, and more so than synchronisation at the stimulation frequency. This was also the case for a periodic condition with reduced stimulation amplitude, as predicted by theory. Furthermore, we demonstrated using synthetic data and modelling that the half-harmonic responses observed in participants cannot be explained by the super-position of evoked responses (even when modulated at the half-harmonic frequency), and are better matched by a minimal oscillator model. Our findings are consistent with half-harmonic EEG synchronisation in response to photic stimulation predom-inantly reflecting half-harmonic entrainment rather than the summation of evoked responses, and with dithering being an effective strategy to suppress subharmonic entrainment.

neuroscience↗

Inhibition of Posterior Thalamic Nuclei Attenuates CGRP-induced Migraine-like Behavior in Mice

ObjectiveTo determine whether induction of migraine-like symptoms in mice by calcitonin gene-related peptide (CGRP) requires activation of the posterior thalamic nuclei (PoT) in the brain.BackgroundPrevious research found that both optical activation of the PoT and injection of CGRP into the PoT are sufficient to induce light aversive behavior in mice. The PoT is well known as a sensory integration center of light and pain signals in the brain. However, whether this region is required for touch hypersensitivity and light aversion following peripheral administration of CGRP was not known.MethodsThe PoT was injected in two strains of mice, inbred C57BL/6J and outbred CD-1, with viral vectors expressing inhibitory chemogenetic Designer Receptors Exclusively Activated by Designer Drugs (DREADDs). The inhibitory DREADDs were activated by systemic intraperitoneal (ip) injection of two designer drugs, clozapine N-oxide (CNO) and DREADD agonist compound 21 (C21). We used ip injection of CGRP to induce migraine-like phenotypes and tested whether we could rescue these phenotypes by bilateral chemogenetic inhibition of the PoT. The light/dark assay was used to measure light aversive behavior (a surrogate for photophobia) and the plantar von Frey assay to measure hindpaw touch sensitivity (a surrogate for extracephalic allodynia).ResultsWe successfully induced light aversive and hindpaw touch hypersensitivity phenotypes in mice using ip injections of CGRP. Activation of the inhibitory DREADDs in the PoT using ip CNO (5 mg/kg) was sufficient to partially rescue the touch hypersensitivity phenotype, but with off target effects in the control mice. Lowering the CNO dose to 1 mg/kg alleviated off target effects but was insufficient to rescue the touch hypersensitivity phenotype. On the other hand, C21 (1 mg/kg) fully rescued the touch hypersensitivity phenotype without any off target effects. Treatment with C21 also partially rescued the light aversion phenotype. These results were consistent across both C57BL/6J and CD-1 mouse strains.ConclusionInhibition of the PoT fully rescues CGRP-induced touch hypersensitivity and partially rescues light aversion in mice, indicating that the PoT is necessary for touch hypersensitivity and partially necessary for light aversive behaviors. These data suggest the PoT is part of a central network that receives peripheral CGRP-induced signals and thus could be harnessed for future targeted therapeutics for migraine.Plain language summaryThe posterior thalamus is a central brain region that contributes to migraine pathophysiology when stimulated. In this study, we asked if inhibition of this brain region could alleviate migraine-like phenotypes in mice. We found that inhibition of the posterior thalamus fully rescues touch hypersensitivity and partially rescues light aversive behavior, suggesting that the posterior thalamus is necessary for migraine pathophysiology and could offer a potential therapeutic target for migraine.

neuroscience↗